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Deformable Registration-Based Super-resolution for Isotropic Reconstruction of 4-D MRI Volumes

机译:基于可变形配准的4D MRI体积各向同性重建的超分辨率

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摘要

Multi-plane super-resolution (SR) has been widely employed for resolution improvement of MR images. However, this has mostly been limited to MRI acquisitions with rigid motion. In cases of non-rigid motion, volumes are usually pre-registered using deformable registration methods before SR reconstruction. The pre-registered images are then used as input for the SR reconstruction. Since deformable registration involves smoothening of the inputs, using pre-registered inputs could lead to loss in information in SR reconstructions. Additionally, any registration errors present in pre-registered inputs could propagate throughout SR reconstructions leading to error accumulation. To address these limitations, in this study, we propose a deformable registration-based super-resolution reconstruction (DIRSR) reconstruction, which handles deformable registration as part of super-resolution. This approach has been demonstrated using 12 synthetic 4-D MRI lung datasets created using single plane (coronal) datasets of six patients and multi-plane (coronal and axial) 4-D lung MRI dataset of one patient. From our evaluation, DIRSR reconstructions are sharper and well aligned compared to reconstructions using SR of pre-registered inputs and rigid-registration SR. MSE, SNR and SSIM evaluations also indicate better reconstruction quality from DIRSR compared to reconstructions from SR of pre-registered inputs (p-value less than 0.0001). In conclusion, we found superior isotropic reconstructions of 4-D MR datasets from DIRSR reconstructions, which could benefit volumetric MR analyses.
机译:多平面超分辨率(SR)已被广泛用于提高MR图像的分辨率。但是,这主要限于具有刚性运动的MRI采集。在非刚性运动的情况下,通常在SR重建之前使用可变形的套准方法对卷进行预套准。然后将预先注册的图像用作SR重建的输入。由于可变形配准涉及输入的平滑化,因此使用预配准的输入可能会导致SR重建中信息的丢失。另外,预注册输入中存在的任何注册错误都可能在整个SR重构中传播,从而导致错误累积。为了解决这些限制,在这项研究中,我们提出了一种基于可变形配准的超分辨率重建(DIRSR)重建,该重建将可变形配准作为超分辨率的一部分进行处理。使用12个合成的4-D MRI肺部数据集(使用六名患者的单平面(冠状)数据集和一名患者的多平面(冠状和轴向)4-D肺部MRI数据集已证明了该方法。根据我们的评估,与使用预先注册的输入的SR和刚性注册SR进行的重建相比,DIRSR重建更加清晰和对齐。 MSE,SNR和SSIM评估还表明,与从预注册输入的SR重建(p值小于0.0001)相比,DIRSR的重建质量更高。总之,我们从DIRSR重建中发现了4D MR数据集的各向同性重建,这可能有益于体积MR分析。

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